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全基因组复制后的进化:网络视角。

Evolution after whole-genome duplication: a network perspective.

机构信息

Department of Computer Science, Rice University, Houston, Texas 77005.

出版信息

G3 (Bethesda). 2013 Nov 6;3(11):2049-57. doi: 10.1534/g3.113.008458.

Abstract

Gene duplication plays an important role in the evolution of genomes and interactomes. Elucidating how evolution after gene duplication interplays at the sequence and network level is of great interest. In this work, we analyze a data set of gene pairs that arose through whole-genome duplication (WGD) in yeast. All these pairs have the same duplication time, making them ideal for evolutionary investigation. We investigated the interplay between evolution after WGD at the sequence and network levels and correlated these two levels of divergence with gene expression and fitness data. We find that molecular interactions involving WGD genes evolve at rates that are three orders of magnitude slower than the rates of evolution of the corresponding sequences. Furthermore, we find that divergence of WGD pairs correlates strongly with gene expression and fitness data. Because of the role of gene duplication in determining redundancy in biological systems and particularly at the network level, we investigated the role of interaction networks in elucidating the evolutionary fate of duplicated genes. We find that gene neighborhoods in interaction networks provide a mechanism for inferring these fates, and we developed an algorithm for achieving this task. Further epistasis analysis of WGD pairs categorized by their inferred evolutionary fates demonstrated the utility of these techniques. Finally, we find that WGD pairs and other pairs of paralogous genes of small-scale duplication origin share similar properties, giving good support for generalizing our results from WGD pairs to evolution after gene duplication in general.

摘要

基因复制在基因组和相互作用组的进化中起着重要作用。阐明基因复制后在序列和网络水平上的相互作用如何进化是非常有趣的。在这项工作中,我们分析了一组在酵母中发生全基因组复制 (WGD) 的基因对的数据。所有这些对都有相同的复制时间,使它们成为进化研究的理想选择。我们研究了 WGD 后在序列和网络水平上的进化相互作用,并将这两个水平的分歧与基因表达和适应性数据相关联。我们发现,涉及 WGD 基因的分子相互作用的进化速度比相应序列的进化速度慢三个数量级。此外,我们发现 WGD 对的分歧与基因表达和适应性数据密切相关。由于基因复制在确定生物系统,特别是网络水平上的冗余方面的作用,我们研究了相互作用网络在阐明复制基因的进化命运方面的作用。我们发现,相互作用网络中的基因邻域为推断这些命运提供了一种机制,并且我们开发了一种实现此任务的算法。根据推断出的进化命运对 WGD 对进行的进一步上位性分析证明了这些技术的实用性。最后,我们发现 WGD 对和其他起源于小规模复制的同源基因对具有相似的性质,这为将我们从 WGD 对中得出的结果推广到一般的基因复制后进化提供了很好的支持。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/137b/3815064/5fb25736c7fc/2049f9.jpg

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